Implementation And Analysis Of Training Algorithms For The Classification Of Infant Cry With Feed-Forward Neural Networks

J Orozco,Ca Reyes-Garcia

2003 IEEE INTERNATIONAL SYMPOSIUM ON INTELLIGENT SIGNAL PROCESSING, PROCEEDINGS: FROM CLASSICAL MEASUREMENT TO COMPUTING WITH PERCEPTIONS(2003)

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摘要
This work presents the development of an automatic recognition system of infant cry, with the objective to classify two types of cry: normal and pathological cry from deaf babies. In this study, we used acoustic characteristics obtained by the Linear Prediction technique and as a classifier a feedforward neural network that was trained with several learning methods, resulting better the Sealed Conjugate Gradient algorithm. Current results are shown, which, up to the moment, are very encouraging with an accuracy up to 94.3%.
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关键词
acoustic features extraction,infant cry recognition,neural networks,pathologies detection,training algorithms
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